open access publication

Article, 2024

Fragmentation of water clusters formed in helium nanodroplets by charge transfer and Penning ionization

The Journal of Chemical Physics, ISSN 1089-7690, 0021-9606, Volume 160, 9, Page 094308, 10.1063/5.0194098

Contributors

De, Subhendu 0009-0002-5658-0844 [1] Abid, Abdul Rahman [2] Asmussen, Jakob D 0000-0001-9881-8617 [2] Ltaief, L. Ben [2] Sishodia, Keshav 0009-0005-7994-3005 [1] Ulmer, A [3] Pedersen, Henrik Baymler 0000-0002-7617-8919 [2] Krishnan, Sivarama R [1] Mudrich, Marcel Carto Constantin 0000-0003-4959-5220 (Corresponding author) [2]

Affiliations

  1. [1] Indian Institute of Technology Madras
  2. [NORA names: India; Asia, South];
  3. [2] Aarhus University
  4. [NORA names: AU Aarhus University; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] Universität Hamburg
  6. [NORA names: Germany; Europe, EU; OECD]

Abstract

Helium nanodroplets ("HNDs") are widely used for forming tailor-made clusters and molecular complexes in a cold, transparent, and weakly interacting matrix. The characterization of embedded species by mass spectrometry is often complicated by the fragmentation and trapping of ions in the HNDs. Here, we systematically study fragment ion mass spectra of HND-aggregated water and oxygen clusters following their ionization by charge transfer ionization ("CTI") and Penning ionization ("PEI"). While the efficiency of PEI of embedded clusters is lower than for CTI by about factor 10, both the mean sizes of detected water clusters and the relative yields of unprotonated cluster ions are significantly larger, making PEI a "soft ionization" scheme. However, the tendency of ions to remain bound to HNDs leads to a reduced detection efficiency for large HNDs containing >104 helium atoms. These results are instrumental in determining optimal conditions for mass spectrometry and photoionization spectroscopy of molecular complexes and clusters aggregated in HNDs.

Keywords

CTI, HND, PEI, Penning ionization, atoms, characterization, charge, charge transfer, charge transfer ionization, cluster ions, clusters, complex, conditions, detection efficiency, efficiency, embedded clusters, embedded species, factors, fragments, helium, helium atoms, helium nanodroplets, interaction matrix, ionization, ions, mass spectrometry, matrix, molecular complexes, nanodroplets, optimal conditions, oxygen, oxygen clusters, pen, photoionization, photoionization spectroscopy, reduced detection efficiency, results, size, species, spectrometry, systematically, transfer, transfer ionization, trapping of ions, traps, water, water clusters

Funders

  • Danish Agency for Science and Higher Education
  • Deutsche Forschungsgemeinschaft
  • Indian Institute of Technology Madras
  • Carlsberg Foundation
  • Indo-French Centre for the Promotion of Advanced Research
  • Science and Engineering Research Board
  • German Academic Exchange Service

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